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Use of activated carbon and camphor carbon as cathode and clay cup as proton exchange membrane in a microbial fuel cell for the bioenergy production from crude glycerol biodegradation.
Ávila Vázquez, Verónica; Enciso Hernández, Eduardo Arturo; Kamaraj, Sathish Kumar; Aguilera Flores, Miguel Mauricio; Espinosa Lumbreras, José Roberto; Durón Torres, Sergio Miguel; Labrada Delgado, Gladis Judith.
Afiliação
  • Ávila Vázquez V; Instituto Politécnico Nacional, Interdisciplinary Professional Unit of Engineering Campus Zacatecas, Zacatecas, Mexico.
  • Enciso Hernández EA; Instituto Politécnico Nacional, Interdisciplinary Professional Unit of Engineering Campus Zacatecas, Zacatecas, Mexico.
  • Kamaraj SK; Tecnológico Nacional de México Campus El Llano Aguascalientes, Aguascalientes, Mexico.
  • Aguilera Flores MM; Instituto Politécnico Nacional, Interdisciplinary Professional Unit of Engineering Campus Zacatecas, Zacatecas, Mexico.
  • Espinosa Lumbreras JR; Academic Unit of Engineering I, Mechanical Engineering, Autonomous University of Zacatecas, Zacatecas, Mexico.
  • Durón Torres SM; Academic Unit of Chemical Sciences, Autonomous University of Zacatecas, Zacatecas, Mexico.
  • Labrada Delgado GJ; Potosino Institute of Scientific and Technological Research, San Luis Potosi, Mexico.
Article em En | MEDLINE | ID: mdl-36250290
ABSTRACT
This work characterizes two alternative materials to substitute the most expensive microbial fuel cells (MFCs) components proton exchange membrane (PEM) and cathode. Crude glycerol biodegradation was studied in MFCs using a clay cup as a PEM and activated carbon and camphor carbon mixture (CAC) as a cathode. The cathode performance was compared with Platinum on carbon cloth. Two clay cup single-chamber MFCs were operated with each cathode and fed with 2000 mg/L of crude glycerol. Electrochemical properties were characterized by linear sweep voltammetry, electrochemical impedance spectroscopy, and chronoamperometry. Biodegradation efficiencies were estimated with the chemical oxygen demand (COD) removal percentage. MFCs with CAC showed a maximum power density of 100 mW/m2. This result was a 43.47% power response regarding MFCs with Platinum. COD removal efficiencies of 94% were achieved in 37 days for both cells. The Columbic efficiencies were 24.04% and 22.78% for the MFCs with Platinum and CAC. The economic analysis showed a cost of USD 9.97 for MFCs with CAC. This cost is five times lower than when using Platinum. MFCs utilizing clay cups and CAC showed an acceptable performance for the bioenergy production from crude glycerol biodegradation above all economic advantage in the cell cost.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Fontes de Energia Bioelétrica Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Fontes de Energia Bioelétrica Idioma: En Ano de publicação: 2022 Tipo de documento: Article